Effacer les filtres
Effacer les filtres

how can I correct errors by interpolation?

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Tiberius
Tiberius le 8 Avr 2014
Commenté : dpb le 8 Avr 2014
Let's say I have this : a=[2 1 720 2.3 2.6 -40 -2 7 3] and I want to keep all the values in the interval (0,4) as they are and interpolate others either by mean (for one 'error') or by some sort of linspace. Thus, the matrix will become a=[2 1 1.65 2.3 2.6 2.7 2.8 2.9 3]. Thanks

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Walter Roberson
Walter Roberson le 8 Avr 2014
a(a < 0 | a > 4) = nan;
then you can use the File Exchange contribution inpaint_nan

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dpb
dpb le 8 Avr 2014
>> a=[2 1 720 2.3 2.6 -40 -2 7 3];
>> ix=find(~iswithin(a,0,4))
>> i1=iswithin(a,0,4);
>> interp1(find(i1),a(i1),ix)
ans =
1.6500 2.7000 2.8000 2.9000
>> b=a;b(ix)=ans
b =
2.0000 1.0000 1.6500 2.3000 2.6000 2.7000 2.8000 2.9000 3.0000
iswithin is my utility helper function--
function flg=iswithin(x,lo,hi)
% returns T for values within range of input
% SYNTAX:
% [log] = iswithin(x,lo,hi)
% returns T for x between lo and hi values, inclusive
flg= (x>=lo) & (x<=hi);
that is simply "syntactic sugar" to put the ugly condition test out of sight.
You can obviously shorten the final by getting rid of some temporaries; just demonstrating the idea.
Unfortunate that you can't tell interp1 to ignore the values at the Xq locations even if present and have to make the selection w/o them to not just return the values in the a vector for them...that would save a step.
  2 commentaires
Tiberius
Tiberius le 8 Avr 2014
Thanks for the quick answers. The inpaint_nans function works wonderfully and I think the second solution works too. I tried several conditional statements myself before coming here. Thanks again.
dpb
dpb le 8 Avr 2014
Walter's utility moves the explicit reduction into a lower level as my iswithin does excepting using NaN as the flag variable instead of selecting the subset. Same cat, different skin... :)

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